Progressive die product conveying device with spacing compensation effect

By designing a continuous mold product conveying device with spacing compensation effect, using the coordination of the conveying rail and the connecting components, and by compensating the coordination of the cylinder and the push plate, the precise alignment of the raw material sheet and the next process station is achieved, solving the problem of limited stamping and forming accuracy in the prior art, and achieving full utilization of space and precise stamping and forming.

CN222856531UActive Publication Date: 2025-05-13WEITANG AUTOMOTIVE STAMPING TECH (WUXI) CO LTD
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Patent Information

Application Number
CN202421526956.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-05-13
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

Due to the fixed single propulsion distance of the conveyor device, the existing continuous mold product conveyor device cannot accurately align with the station in the next process, affecting the accuracy of stamping forming.

Method used

A continuous mold product conveying device with spacing compensation effect is designed. The conveying rail and the connecting components cooperate with each other. By compensating the coupling of the cylinder and the compensation push plate, the position adjustment of the pneumatic jaws is realized, so that the material sheet is aligned with the work station below.

Benefits of technology

The full utilization of space and precise stamping and forming of raw materials is achieved, and the accuracy and scope of application of stamping and forming are improved.

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Abstract

The progressive die product conveying device with the spacing compensation effect comprises two conveying rails and a plurality of sets of connecting assemblies, the two conveying rails are arranged in parallel, the connecting assemblies are arranged on the conveying rails, and each connecting assembly comprises a mounting block, a compensation air cylinder, a compensation push plate and a pneumatic clamping jaw. The sides, close to each other, of the conveying rails are each connected with one mounting block, mounting grooves are formed in the sides, away from the conveying rails, of the mounting blocks, the compensation air cylinders are mounted on the inner walls of the mounting grooves, output shafts of the compensation air cylinders are arranged in the length directions of the conveying rails, and the compensation push plates are in transmission connection with the compensation air cylinders. The compensation push plate is vertically connected with a first connecting plate, and the pneumatic clamping jaw is arranged on the first connecting plate. The stamping forming device has the effects that the space is fully utilized, and accurate stamping forming of raw materials is achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of production and transmission of continuous mold products, and in particular to a continuous mold product transmission device with a spacing compensation effect. Background Art

[0002] A progressive die refers to a cold stamping die in which a press machine uses strip-shaped stamping raw materials to complete multiple stamping processes simultaneously on a die using several different workstations in one stamping stroke. Each time the die completes a stamping, the material strip or sheet moves once at a fixed distance until the product completes the stamping operation.

[0003] At present, in the previous continuous mold, the transfer step distance between each stamping station is equal, so that the raw materials set on the conveyor can be driven to move synchronously by an equal distance, align with the station of the next stamping process and perform precise stamping operations. However, in order to fully utilize the mold structure space, some current stamping continuous molds have slight differences in the moving step distance between each adjacent station.

[0004] With respect to the above-mentioned related technologies, the inventors believe that in the prior art, when the raw material sheets are moving with the conveying device, since the distance that the conveying device can advance at a single time is fixed, the raw material sheets on the upper part of the conveying device cannot be accurately aligned with the workstations in the next process, thus affecting the accuracy of stamping. Utility Model Content

[0005] In order to fully utilize the space and achieve accurate stamping and forming of raw materials, the present application provides a continuous mold product conveying device with a spacing compensation effect.

[0006] A continuous mold product conveying device with a spacing compensation effect provided in the present application adopts the following technical solution: a continuous mold product conveying device with a spacing compensation effect, comprising a conveying rail and a connecting component, wherein two conveying rails are arranged in parallel, and the connecting component is arranged in several groups on the conveying rail, and the connecting component comprises a mounting block, a compensation cylinder, a compensation push plate and a pneumatic clamp, wherein each mounting block is connected to one side of each conveying rail close to each other, and a mounting groove is provided on the side of the mounting block away from the conveying rail, the compensation cylinder is installed on the inner wall of the mounting groove, and the output shaft of the compensation cylinder is arranged along the length direction of the conveying rail, the compensation push plate is transmission-connected to the compensation cylinder, a first connecting plate is vertically connected to the compensation push plate, and the pneumatic clamp is arranged on the first connecting plate.

[0007] By adopting the above technical solution, the pneumatic clamp is connected to the conveyor rail through the mounting block, and the sheet is clamped between the two corresponding pneumatic clamps and moves above the continuous mold along the conveyor rail. When there is a positional offset between the pneumatic clamp and the continuous mold station, the compensation cylinder is started to drive the compensation push plate to move along the length direction of the conveyor rail, thereby adjusting the position of the pneumatic clamp and aligning the sheet with the station below. Through the cooperation of the conveyor rail and the connecting components, it has the effect of fully utilizing the space and realizing the precise stamping and forming of the raw materials.

[0008] Optionally, the connecting assembly also includes an L-shaped plate and a second connecting plate, wherein one L-shaped plate is slidably provided on each side of the conveying rails that are close to each other, the second connecting plate is provided on the L-shaped plate, one clamp is provided on each of the second connecting plates, and a plug-in sleeve rod is provided between the L-shaped plate and the compensating push plate.

[0009] By adopting the above technical solution, the L-shaped plate is connected to the compensation push plate through the plug-in sleeve rod, so that the device can use one driving source to accurately adjust the positions of two sheets at the same time.

[0010] Optionally, the L-shaped plate includes a vertical portion and a horizontal portion, the vertical portion is slidably connected to the conveying rail, a spacing adjustment component is arranged between the L-shaped plate and the mounting block, the spacing adjustment component includes an adjusting motor, an adjusting gear, and an adjusting rack, the adjusting rack is connected to the vertical portion, the adjusting rack and the plug-in sleeve rod are both arranged along the length direction of the conveying rail, the adjusting rack is inserted in the plug-in sleeve rod, the adjusting motor is connected to the plug-in sleeve rod, the adjusting gear is transmission-connected to the adjusting motor, and the adjusting gear is meshingly connected to the adjusting rack.

[0011] By adopting the above technical solution, when the spacing between the L-shaped plate and the mounting block needs to be adjusted, the adjusting motor is started, the adjusting gear rotates, and the adjusting rack slides in the plug-in sleeve rod, thereby achieving the spacing adjustment between the two.

[0012] Optionally, a positioning assembly is provided on the plug-in sleeve rod, and the positioning assembly includes a positioning rod and a positioning wedge block. The positioning rod passes through the plug-in sleeve rod and is slidably connected thereto. The positioning wedge block is connected to one end of the positioning rod located in the plug-in sleeve rod. The positioning wedge block is plugged into the adjustment rack. When the positioning rod moves to a certain position, the positioning wedge block is separated from the adjustment rack.

[0013] By adopting the above technical solution, when the spacing between the L-shaped plate and the mounting block needs to be adjusted, the positioning rod is pulled, and the positioning wedge is separated from the adjustment rack. When the spacing is adjusted, the positioning rod is pushed, and the positioning wedge is re-engaged in the teeth of the adjustment rack, thereby limiting the adjustment rack and reducing the possibility of the adjustment rack sliding in the plug-in sleeve.

[0014] Optionally, a buffer pad is connected to the inner wall of the mounting groove away from the compensating cylinder.

[0015] By adopting the above technical solution, the provision of the buffer pad reduces the possibility of damage caused by collision between the compensating push plate and the inner wall of the installation groove.

[0016] Optionally, a mounting base plate is connected to the bottom surface of the mounting block, a mounting slider is slidably arranged on the inner wall of the mounting groove close to the compensating cylinder, an adjusting screw is threadedly connected to the mounting slider along the vertical direction, and the bottom end of the adjusting screw is rotatably connected to the mounting base plate.

[0017] By adopting the above technical solution, when the height of the pneumatic clamp needs to be adjusted, the adjusting screw is screwed and the mounting slide is moved in the vertical direction, thereby achieving height adjustment of the compensation cylinder and the pneumatic clamp, and expanding the application range of the device.

[0018] Optionally, a transmission plate is connected to the output shaft of the compensation cylinder, and the transmission plate is connected to the compensation push plate by bolts. A first waist-shaped hole for the bolts to pass through is opened on the compensation push plate along the horizontal direction, and the second connecting plate is connected to the horizontal part by bolts. A second waist-shaped hole for the bolts to pass through is opened on the second connecting plate, and the length direction of the second waist-shaped hole is perpendicular to the length direction of the conveying track.

[0019] By adopting the above technical solution, for sheets of different lengths, it is necessary to adjust the spacing between the two corresponding pneumatic clamps, adjust the relative position between the transmission plate and the compensation push plate, and use bolts to pass through the first waist-shaped hole to fix the compensation push plate to the transmission plate. Adjust the relative position between the second connecting plate and the L-shaped plate, and use bolts to pass through the second waist-shaped hole to connect the second connecting plate to the L-shaped plate, thereby achieving the spacing adjustment of the pneumatic clamps and expanding the scope of application of the device.

[0020] Optionally, spacing scale lines are provided on the adjustment rack along the length direction.

[0021] By adopting the above technical solution, the setting of the spacing scale lines facilitates the operator to accurately adjust the spacing between the L-shaped plate and the mounting block.

[0022] In summary, the present application includes at least one of the following beneficial technical effects:

[0023] 1. Through the cooperation of the conveyor rails and the connecting components, it can fully utilize the space and realize the precise stamping and forming of the raw materials;

[0024] 2. When the height of the pneumatic gripper needs to be adjusted, the adjusting screw is screwed and the mounting slide is moved in the vertical direction, thereby realizing the height adjustment of the compensation cylinder and the pneumatic gripper, and expanding the application range of the device;

[0025] 3. The setting of the spacing scale lines facilitates the operator to accurately adjust the spacing between the L-shaped plate and the mounting block. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 It is a structural schematic diagram of an embodiment of the present application for embodying a continuous mold product conveying device with a spacing compensation effect.

[0027] Figure 2 yes Figure 1 Enlarged view of part A in the middle.

[0028] Figure 3 It is a partial cross-sectional view used to illustrate the spacing adjustment component in the embodiment of the present application.

[0029] Figure 4 yes Figure 3 Enlarged view of part B in the middle.

[0030] Figure 5 It is a schematic diagram of the structure used to reflect the abutment ball in the embodiment of the present application.

[0031] Description of reference numerals: 1. conveyor rail; 101. T-slot; 2. connection assembly; 21. mounting block; 22. L-shaped plate; 221. vertical portion; 222. horizontal portion; 223. sliding waist-shaped hole; 23. first connection plate; 24. second connection plate; 25. pneumatic clamp; 3. spacing adjustment assembly; 31. adjustment motor; 32. adjustment gear; 33. adjustment rack; 34. plug-in sleeve rod; 35. limit rod; 4. positioning assembly; 41. positioning pull block; 42. Positioning pull rod; 43, positioning tension spring; 44, positioning wedge block; 5, second connecting block; 6, mounting groove; 7, dovetail groove; 8, mounting base plate; 9, mounting slider; 10, dovetail block; 11, adjusting screw; 12, compensation cylinder; 13, transmission plate; 14, compensation push plate; 141, first waist-shaped hole; 15, first connecting block; 16, buffer pad; 17, receiving groove; 18, abutting ball; 19, second waist-shaped hole; 20, spacing scale line; 26, sliding groove. DETAILED DESCRIPTION

[0032] The following is combined with Figure 1-5The present application is further described in detail. The present application provides a continuous die product conveying device with a spacing compensation effect, which has the effect of fully utilizing the space and realizing accurate stamping and forming of the raw materials.

[0033] Reference Figure 1 and Figure 2 A continuous mold product conveying device with a spacing compensation effect includes a conveying rail 1, a connecting component 2, a spacing adjustment component 3 and a positioning component 4. Two conveying rails 1 are arranged in parallel, and the two conveying rails 1 are located in the same horizontal plane. A plurality of connecting components 2 are arranged between the two conveying rails 1 along the length direction thereof.

[0034] Reference Figure 2 and Figure 3 The connection assembly 2 includes a mounting block 21, an L-shaped plate 22, a first connection plate 23, a second connection plate 24 and a pneumatic clamp 25. Each set of the connection assembly 2 includes two mounting blocks 21 and two L-shaped plates 22. The two mounting blocks 21 are correspondingly arranged on the sides of the two conveyor rails 1 that are close to each other, and the two L-shaped plates 22 are correspondingly arranged on the sides of the two conveyor rails 1 that are close to each other. A T-shaped slot 101 is provided along the length direction of the conveyor rail 1 on one side close to the mounting block 21 and the L-shaped plate 22. A second connection block 5 is slidably arranged in the T-shaped slot 101. A bolt for connecting with the second connection block 5 is provided on the mounting block 21. The bolt is threadedly connected with the first connection block 15, and the second connection block 5 is tightly pressed against the inner wall of the T-shaped slot 101. A mounting slot 6 is provided on the side of the mounting block 21 away from the conveyor rail 1. A dovetail slot 7 is provided on one of the inner walls of the mounting slot 6 that is perpendicular to the length direction of the conveyor rail 1 along the vertical direction. The dovetail slot 7 runs through the opposite ends of the mounting block 21. The bottom surface of the mounting block 21 is connected to the mounting base plate 8, and the mounting slide block 9 is provided in the mounting groove 6. A dovetail block 10 is fixedly connected to one side of the mounting slide block 9, and the dovetail block 10 is slidably connected in the sliding groove. An adjusting screw 11 is threadedly connected in the vertical direction in the sliding block, and the bottom end of the adjusting screw 11 is rotatably connected to the mounting base plate 8.

[0035] Reference Figure 2, the side of the mounting slide block 9 away from the inner wall of the mounting groove 6 is connected with a compensating cylinder 12, and the output shaft of the compensating cylinder 12 is arranged parallel to the length direction of the conveying rail 1. The output shaft of the compensating cylinder 12 is connected with a transmission plate 13, and the side of the transmission plate 13 away from the compensating cylinder 12 is connected with a compensating push plate 14 by bolts, and a first waist-shaped hole 141 is opened in the horizontal direction on the compensating push plate 14, and the length direction of the first waist-shaped hole 141 is perpendicular to the length direction of the conveying rail 1, and the bolt passes through the first waist-shaped hole 141 and is tightly pressed against the compensating push plate 14. The first connecting plate 23 is vertically fixedly connected to the compensating push plate 14, and a pneumatic clamp 25 is arranged on the side where the two first connecting plates 23 in the same group of connecting components 2 are close to each other. A buffer pad 16 is installed on the vertical inner wall of the mounting groove 6 away from the dovetail groove 7.

[0036] Reference Figure 2 , Figure 4 and Figure 5 The L-shaped plate 22 includes a vertical portion 221 and a horizontal portion 222. The vertical portion 221 is connected to the conveyor rail 1, and the horizontal portion 222 is vertically arranged at the bottom end of the vertical portion 221. A sliding waist-shaped hole 223 is provided on the vertical portion 221 along the vertical direction. A first connecting block 15 is slidably arranged in the T-shaped slot 101. A contact ball 18 is rollingly embedded on one side of the first connecting block 15 close to the inner wall of the T-shaped slot 101. The contact ball 18 is rollingly fitted with the inner bottom wall of the T-shaped slot 101. Bolts for connecting with the first connecting block 15 are provided on the L-shaped plate 22. The bolts pass through the vertical portion 221 through the sliding waist-shaped hole 223 and are slidably connected with the vertical portion 221.

[0037] Reference Figure 2 The horizontal portion 222 is connected to a second connecting plate 24 by bolts, and the second connecting plate 24 is provided with a second waist-shaped hole 19 for the bolts to pass through, and the length direction of the second waist-shaped hole 19 is perpendicular to the length direction of the conveying rail 1. A pneumatic clamp 25 is connected to the side of the two second connecting plates 24 in the same group of connecting components 2 that are close to each other.

[0038] Reference Figure 3 and Figure 4The spacing adjustment component 3 is arranged between the L-shaped plate 22 and the mounting block 21, and the spacing adjustment component 3 includes an adjustment motor 31, an adjustment gear 32, an adjustment rack 33, a plug-in sleeve rod 34 and a limit rod 35. The adjustment rack 33 is fixedly connected to the top of the vertical portion 221, one end of the adjustment rack 33 is arranged in the direction of the mounting block 21, and the adjustment rack 33 is arranged parallel to the conveying rail 1. The plug-in sleeve rod 34 is fixedly connected to the top of the compensation push plate 14, one end of the plug-in sleeve rod 34 extends in the direction of the L-shaped plate 22, and the plug-in sleeve rod 34 is arranged parallel to the conveying rail 1. The adjustment rack 33 is inserted into the inner cavity of the plug-in sleeve rod 34, the adjustment motor 31 is connected to the plug-in sleeve rod 34, the output shaft of the adjustment motor 31 extends into the plug-in sleeve rod 34 and is transmission-connected with the adjustment gear 32, and the adjustment gear 32 is meshed and connected with the adjustment rack 33.

[0039] Reference Figure 3 and Figure 4 , the adjustment rack 33 is provided with spacing scale lines 20 along the length direction, and the adjustment rack 33 is provided with a sliding through groove 26 along the length direction. The limit rod 35 is vertically fixedly connected to the adjustment sleeve rod, and the limit rod 35 is a square rod, and the limit rod 35 is slidably connected to the sliding through groove 26. The positioning assembly 4 is provided on the plug-in sleeve rod 34, and the positioning assembly 4 includes a positioning pull block 41, a positioning pull rod 42, a positioning tension spring 43 and a positioning wedge block 44. The positioning pull rod 42 passes through the plug-in sleeve rod 34 along the vertical direction and is slidably connected thereto, the positioning pull block 41 is fixedly connected to one end of the positioning pull rod 42 located outside the plug-in sleeve rod 34, and the positioning wedge block 44 is fixedly connected to one end of the positioning pull rod 42 located inside the plug-in sleeve rod 34. The inner cavity of the plug sleeve rod 34 is provided with a receiving groove 17 for receiving the positioning wedge block 44. The positioning tension spring 43 is sleeved on the positioning pull rod 42. One end of the positioning tension spring 43 is connected to the positioning pull block 41, and the other end of the positioning tension spring 43 is connected to the plug sleeve rod 34. In the natural state, the positioning wedge block 44 is meshed and connected with the adjustment rack 33 under the action of the positioning tension spring 43.

[0040] Reference Figure 1 and Figure 2In the production process of stamping products, the punched raw material sheets are clamped between the corresponding two pneumatic clamps 25. The mounting block 21 and the L-shaped plate 22 move above the continuous mold with the conveyor rail 1, and the conveyor rail 1 moves an equal distance each time. When there is a position error between the raw material sheet and the stamping station below, the compensation cylinder 12 is started, driving the compensation push plate 14 and the L-shaped plate 22 connected to the compensation push plate 14 through the spacing adjustment component 3 to move along the length direction of the conveyor rail 1. The raw material sheet connected between the corresponding two pneumatic clamps 25 moves with the pneumatic clamps 25 in the length direction of the conveyor rail 1 to achieve fine-tuning of its position, so that the sheet can be accurately aligned with the station below, which helps to improve the processing accuracy of the product. The setting of the mounting block 21 and the L-shaped plate 22 makes it possible to use one drive source to fine-tune the position of two symmetrical sheets at the same time.

[0041] Reference Figure 4 and Figure 5 When the spacing between the two pairs of pneumatic jaws 25 needs to be adjusted, the adjusting motor 31 starts to drive the adjusting gear 32 to rotate, the adjusting rack 33 slides in the plug-in sleeve rod 34, and the limit rod 35 limits and guides the moving direction of the adjusting rack 33, thereby adjusting the spacing between the L-shaped block and the mounting block 21. When the L-shaped plate 22 slides on the conveyor rail 1, the second connecting block 5 slides in the T-shaped slot 101, and the setting of the abutting ball 18 reduces the friction between the second connecting block 5 and the inner wall of the T-shaped slot 101. The setting of the spacing scale line 20 realizes the precise adjustment of the spacing between the L-shaped block and the mounting block 21. The setting of the buffer pad 16 avoids the possibility of damage caused by the collision between the compensation push plate 14 and the inner wall of the mounting slot 6 during movement.

[0042] Reference Figure 4 When adjusting the distance between the L-shaped plate 22 and the mounting block 21, the positioning block 41 is pulled upward, the positioning inclined block enters the receiving groove 17 and disengages from the adjusting rack 33, and the positioning spring 43 stretches to accumulate elastic potential energy. When the adjustment of the distance is completed, the positioning block 41 is released, and the positioning wedge block 44 moves downward under the action of the positioning spring 43 and meshes with the adjusting rack 33, thereby achieving its positioning, reducing the possibility of the adjusting rack 33 sliding in the plug-in sleeve rod 34, and at the same time reducing the load on the adjusting gear 32 and the adjusting motor 31 when the adjusting rack 33 shakes.

[0043] Reference Figure 2For sheets of different lengths, the spacing between the two corresponding pneumatic clamps 25 needs to be adjusted. The relative position between the compensating push plate 14 and the transmission plate 13 is adjusted, and the two are fixed by bolts passing through the first waist-shaped hole 141. The relative position between the second connecting plate 24 and the horizontal portion 222 is adjusted, and the two are fixed by bolts passing through the second waist-shaped hole 19, thereby achieving the spacing adjustment of the two corresponding pneumatic clamps 25.

[0044] Reference Figure 2 For continuous molds of different heights, the height of the pneumatic clamp 25 needs to be adjusted. At this time, the adjusting screw 11 needs to be screwed, the mounting slide 9 slides along the length direction of the dovetail groove 7, and the compensation cylinder 12 slides in the vertical direction along with the mounting slide 9, so as to achieve the height adjustment of the compensation cylinder 12. The L-shaped plate 22 is connected to the compensation push plate 14 through the spacing adjustment component 3. The L-shaped plate 22 moves in the vertical direction along with the compensation push plate 14, and the bolt passing through the second waist-shaped hole 19 moves relative to the vertical portion 221.

[0045] The implementation principle of a continuous die product conveying device with a spacing compensation effect in the embodiment of the present application is as follows: in the production process of stamping products, the punched raw material sheet is clamped between two corresponding pneumatic clamps 25. When there is a position error between the raw material sheet and the stamping station below, the compensation cylinder 12 drives the compensation push plate 14 and the L-shaped plate 22 to move along the length direction of the conveying rail 1. The raw material sheet connected between the pneumatic clamps 25 moves in the length direction of the conveying rail 1, so that the sheet can be accurately aligned with the station below.

[0046] When the spacing between the two pairs of pneumatic clamps 25 needs to be adjusted, the adjustment motor 31 is started, and the adjustment rack 33 slides in the plug-in sleeve rod 34, thereby adjusting the spacing between the L-shaped block and the mounting block 21. For sheets of different lengths, the spacing between the two corresponding pneumatic clamps 25 is adjusted by adjusting the relative position between the compensation push plate 14 and the transmission plate 13, and the relative position between the second connecting plate 24 and the horizontal portion 222. For continuous molds of different heights, the adjustment screw 11 is screwed, and the compensation cylinder 12 slides in the vertical direction, thereby adjusting the height of the compensation cylinder 12.

[0047] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A continuous mold product conveying device with a spacing compensation effect, characterized in that: The invention comprises a conveying rail (1) and a connecting assembly (2), wherein two conveying rails (1) are arranged in parallel, and the connecting assembly (2) is arranged in a plurality of groups on the conveying rail (1). The connecting assembly (2) comprises a mounting block (21), a compensating cylinder (12), a compensating push plate (14) and a pneumatic clamp (25), wherein one mounting block (21) is connected to each side of the conveying rail (1) close to each other, and a mounting groove (6) is provided on the side of the mounting block (21) away from the conveying rail (1). The compensating cylinder (12) is installed on the inner wall of the mounting groove (6), and the output shaft of the compensating cylinder (12) is arranged along the length direction of the conveying rail (1). The compensating push plate (14) is transmission-connected to the compensating cylinder (12), and a first connecting plate (23) is vertically connected to the compensating push plate (14). The pneumatic clamp (25) is arranged on the first connecting plate (23).

2. A continuous mold product conveying device with spacing compensation effect according to claim 1, characterized in that: The connecting assembly (2) further comprises an L-shaped plate (22) and a second connecting plate (24), wherein one L-shaped plate (22) is slidably arranged correspondingly on a side of each conveying rail (1) close to each other, the second connecting plate (24) is arranged on the L-shaped plate (22), one pneumatic clamp (25) is arranged on each second connecting plate (24), and a plug-in sleeve rod (34) is arranged between the L-shaped plate (22) and the compensating push plate (14).

3. A continuous mold product conveying device with spacing compensation effect according to claim 2, characterized in that: The L-shaped plate (22) comprises a vertical portion (221) and a horizontal portion (222); the vertical portion (221) is slidably connected to the conveying rail (1); a spacing adjustment component (3) is arranged between the L-shaped plate (22) and the mounting block (21); the spacing adjustment component (3) comprises an adjustment motor (31), an adjustment gear (32), and an adjustment rack (33); the adjustment rack (33) is connected to the vertical portion (221); the adjustment rack (33) and the plug-in sleeve rod (34) are both arranged along the length direction of the conveying rail (1); the adjustment rack (33) is inserted into the plug-in sleeve rod (34); the adjustment motor (31) is connected to the plug-in sleeve rod (34); the adjustment gear (32) is transmission-connected to the adjustment motor (31); and the adjustment gear (32) is meshingly connected to the adjustment rack (33).

4. A continuous mold product conveying device with spacing compensation effect according to claim 3, characterized in that: A positioning assembly (4) is provided on the plug-in sleeve rod (34), and the positioning assembly (4) includes a positioning rod (42) and a positioning wedge (44). The positioning rod (42) passes through the plug-in sleeve rod (34) and is slidably connected thereto. The positioning wedge (44) is connected to one end of the positioning rod (42) located in the plug-in sleeve rod (34). The positioning wedge (44) is plugged into the adjusting rack (33). When the positioning rod (42) moves to a certain position, the positioning wedge (44) is separated from the adjusting rack (33).

5. The continuous mold product conveying device with spacing compensation effect according to claim 1 is characterized in that: A buffer pad (16) is connected to the inner wall of the mounting groove (6) away from the compensation cylinder (12).

6. The continuous mold product conveying device with spacing compensation effect according to claim 1 is characterized in that: A mounting base plate (8) is connected to the bottom surface of the mounting block (21); a mounting slide block (9) is slidably arranged on the inner wall of the mounting groove (6) close to the compensation cylinder (12); an adjusting screw rod (11) is threadedly connected to the mounting slide block (9) along a vertical direction; and the bottom end of the adjusting screw rod (11) is rotatably connected to the mounting base plate (8).

7. The continuous mold product conveying device with spacing compensation effect according to claim 3 is characterized in that: A transmission plate (13) is transmission-connected to the output shaft of the compensating cylinder (12), and the transmission plate (13) is connected to the compensating push plate (14) by bolts. A first waist-shaped hole (141) is provided on the compensating push plate (14) along the horizontal direction for the bolts to pass through. The second connecting plate (24) is connected to the horizontal portion (222) by bolts, and a second waist-shaped hole (19) is provided on the second connecting plate (24) for the bolts to pass through. The length direction of the second waist-shaped hole (19) is perpendicular to the length direction of the conveying rail (1).

8. The continuous mold product conveying device with spacing compensation effect according to claim 3 is characterized in that: The adjusting rack (33) is provided with spacing scale lines (20) along the length direction.